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May 7, 2026Imaging Neuroscience0 citationsOpen Access

Mapping the structural connections between the anterior cingulate cortex and the insula/ventrolateral prefrontal cortex

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WTWei TangJGJavier GuajeSFShreyas Fadnavis

Key Points

  • The objective is to clarify the anatomical connections between the anterior cingulate cortex (ACC) and the ventrolateral prefrontal cortex (vlPFC) within the human brain.
  • Used diffusion-weighted magnetic resonance imaging (dMRI) to explore ACC-insula/vlPFC pathways.
  • Addressed fiber orientation biases affecting white matter streamlines in the deep white matter.
  • Applied a reweighting approach based on individual variability to improve fiber orientation distribution functions.
  • Successfully reconstructed ACC-insula/vlPFC pathways using advanced dMRI techniques.
  • Supported anatomical basis for the functional relationships involving inhibitory control and the salience network.

Abstract

Abstract The anterior cingulate cortex (ACC) is functionally closely related with the insula and the ventral lateral prefrontal cortex (vlPFC). The ACC and insula are the main hubs of the salience network, a set of functionally related brain regions involved in detecting salient stimuli and coordinating inter-network communication, while communication between ACC and vlPFC is closely linked to inhibitory control. However, despite strong indirect evidence from nonhuman primate (NHP) tract-tracing, the structural connections between the ACC and the insula/vlPFC remain poorly understood in the human brain, in part because standard approaches fail to capture this projection. In this study, we show that diffusion-weighted magnetic resonance imaging (dMRI) can reconstruct ACC-insula/vlPFC pathways after a technical adjustment to the fiber orientation distribution functions. First, using NHP dMRI as a diagnostic tool, we pinpointed an issue of fiber orientation biases in the deep white matter that uniquely impacts the streamlines connecting the ACC and the insula/vlPFC region. We introduced a reweighting approach based on individual variability to correct for the fiber orientation density function. Finally, we demonstrated that, by applying this fix, dMRI tractography can fully recover the ACC-insula/vlPFC pathways, supporting the anatomical basis of the functional relationships among these regions.

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Cite This Study

Tang et al. (2026) studied this question.

synapsesocial.com/papers/69fbe2b3164b5133a91a2142https://doi.org/10.1162/imag.a.1253
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